Open Access Open Access  Restricted Access Subscription Access
Open Access Open Access Open Access  Restricted Access Restricted Access Subscription Access

Quartz C-Axis Texture Mapping of Mylonitic Metapelite With Rod Structures (Calabria, Southern Italy): Clues for Hidden Shear Flow Direction


Affiliations
1 Dipartimento di Scienze Geologiche, Corso Italia 57, 95129 Catania, Italy
     

   Subscribe/Renew Journal


This quantitative microstructural study deals with textures of quartz domains within a mylonitized metapelite collected near a thrust surface corresponding to the tectonic contact between two metamorphic units, which crop out in the Aspromonte Massif, southern Calabria (Italy). The sample investigated lacks a mesoscopic stretching lineation. Therefore, quartz c-axis fabrics were investigated in two mutually orthogonal thin sections (a) parallel to the quartz rod lineation and perpendicular to the foliation (YZ plane) and (b) perpendicular to the quartz rods and perpendicular to the foliation (XZ plane); the data were generated using classical (manual measurements of quartz c-axis using U-stage) and modern methods (Computer Integrated Polarization microscopy). Both these sections show oblique foliations at ca. 40° from the main shear plane, implying that the actual X direction (stretching lineation that is absent on the mesoscopic scale) must lie between these two sections. Quartz c-axis data from the YZ section when rotated by 90° are similar with those from the XZ section. Hence, the data from the two sections are merged. These data when rotated by an angle of 50° from the direction of quartz rod lineation, gives an asymmetrical pattern indicating top-to-the-North sense of shear. This was confirmed by investigating quartz c-axis patterns in a section striking NS and perpendicular to the foliation. Based on the study it is thus concluded that this method can be used to do kinematic analysis in rocks that are devoid of stretching lineations. Apart from the above, the advantages and disadvantages of the classical and modern methods of quartz c-axis analysis are discussed.

Keywords

Quartz CPO, Rods, L-S Mylonite, Calabria, Grain Boundary Mapping.
Subscription Login to verify subscription
User
Notifications
Font Size

  • BARRETT, S.D. (2008) Image SXM, http://www.ImageSXM.org.uk CARRERAS, J., ESTRADA, A. and WHITE, S. (1977) The effects of folding on the c-axis fabrics of a quartz-mylonite. Tectonophysics, v.39, pp.3-24.
  • CIRRINCIONE, R., ORTOLANO, G., PEZZINO,A. and PUNTURO, R. (2008) Poly-orogenic multi-stage metamorphic evolution inferred via P-T pseudosections: an example from Aspromonte Massif basement rocks (Southern Calabria, Italy). Lithos, v.103, pp.466-502.
  • DUYSTER, J. (1996) Stereonett v.2.0, University of Bochum. http:// www.microtexture.de/StereoHTML/quarzava.htm
  • FAZIO, E., CIRRINCIONE, R. and PEZZINO, A. (2008) Estimating P-T conditions of Alpine-type metamorphism using multistage garnet in the tectonic windows of the Cardeto area (southern Aspromonte Massif, Calabria). Mineral. and Petrol., v.93, pp.111-142.
  • FAZIO, E., CIRRINCIONE, R. and PEZZINO, A. (2009) Garnet crystal growth in sheared metapelites (southern Calabria - Italy): relationships between isolated porphyroblasts and coalescing euhedral crystals. Per. Mineral., v.78, pp.3-18.
  • FUETEN, F., ROBIN, P.Y.F. and STEPHENS, R. (1991) A model for the development of a domainal quartz c-axis fabric in a coarsegrained gneiss. Jour. Struct. Geol., v.13, pp.1111-1124.
  • GRAESSNER, T. and SCHENK,V. (1999) Low-pressure metamorphism of Paleozoic pelites in the Aspromonte, southern Calabria: constraints for the thermal evolution in the Calabrian crustal cross-section during the Hercynian orogeny. Jour. Metam. Geol., v.17, pp.157-172.
  • HEILBRONNER, R. (2000a) Automatic grain boundary detection and grain size analysis using polarization micrographs on orientation images. Jour. Struct. Geol., v.22, pp.969-981.
  • HEILBRONNER, R. (2000b) Optical Orientation Imaging. In: M.W. Jessell and J.L. Urai (Eds.), Stress, Strain and Structure, A volume in honour of W. D. Means, Jour. Virtual Explorer, v.2.
  • HEILBRONNER, R. and BRUHN, D. (1998) The influence of threedimensional grain size distributions on the rheology of polyphase rocks. Jour. Struct. Geol., v.20, pp.695-707.
  • HEILBRONNER, R. and TULLIS, J. (2006) Evolution of c axis pole figures and grain size during dynamic recrystallization: Results from experimentally sheared quartzite. Jour.Geophys. Res., v.111, B10202.
  • HIPPERTT, J. (1994) Microstructures and c-axis fabrics indicative of quartz dissolution in sheared quartzites and phyllonites. Tectonophysics, v.229, pp.141-163.
  • HONGNA, F.D. and HIPPERTT, J.F. (2001) Quartz crystallographic and morphologic fabrics during folding/transposition in mylonites. Jour. Struct. Geol., v.23, pp.81-92.
  • LAGOEIRO, L., HIPPERTT, J. and LANA, C. (2003) Deformation partitioning during folding and transposition of quartz layers. Tectonophysics, v.361, pp.171-186.
  • ORTOLANO, G., CIRRINCIONE, R. and PEZZINO, A. (2005) P-T evolution of Alpine metamorphism in the southern Aspromonte Massif (Calabria - Italy). Swiss Bull. Min. Petr., v.85, pp.31-56.
  • PANOZZO HEILBRONNER, R. and PAULI, C. (1993) Integrated spatial and orientation analysis of quartz [c]-axes by computer-aided microscopy. Jour. Struct. Geol., v.15, pp.369-382.
  • PEZZINO, A., ANGI', G., FAZIO, E., FIANNACCA, P., LO GIUDICE, A., ORTOLANO, G., PUNTURO, R. CIRRINCIONE, R. and DE VUONO, E. (2008) Alpine Metamorphism in the Aspromonte Massif: Implications for a New Framework for the Southern Sector of the Calabria-Peloritani Orogen, Italy. Int. Geol. Rew., v.50, pp.423-441.
  • PEZZINO, A., PANNUCCI, S., PUGLISI, G., ATZORI, P., IOPPOLO, S. and LO GIUDICE, A. (1990) Geometry and metamorphic environment of the contact between the Aspromonte - Peloritani Unit (Upper Unit) and Madonna di Polsi (Lower Unit) in the central Aspromonte area (Calabria). Boll. Soc. Geol. It., v.109, pp.455-469.
  • PEZZINO, A., PUGLISI, G., PANNUCCI, S. and IOPPOLO, S. (1992) Due unita cristalline a grado metamorfico diverso in Aspromonte centrale. Geometria dei loro rapporti, ambientazione metamorfica del loro contatto e caratteri petrografici delle metamorfiti. Boll. Soc. Geol. It., v.111, pp.69-80.
  • SCHMID, S.M. (1982) Microfabric studies as indicators of deformation mechanisms and flow laws operative in mountain building. In: K.J. Hsu (Ed.), Mountain Building Processes, Academic Press, London, pp. 95-110.
  • SCHMID, S.M. and CASEY, M. (1986) Complete fabric analysis of some commonly observed quartz C-axis patterns. Geophys. Monographs, v.36, pp.263-286.
  • STIPP, M., STUNITZ, H., HEILBRONNER, R. and SCHMID, S. M. (2002) The eastern Tonale fault zone: a "natural laboratory" for crystal plastic deformation of quartz over a temperature range from 250°C to 700°C. Jour. Struct. Geol., v.24, pp. 1861-1884.
  • STUNITZ, H. (1991) Folding and shear deformation in quartzites, inferred from crystallographic preferred orientation and shape fabric. Jour. Struct. Geol., v.13, pp.71-86.

Abstract Views: 176

PDF Views: 0




  • Quartz C-Axis Texture Mapping of Mylonitic Metapelite With Rod Structures (Calabria, Southern Italy): Clues for Hidden Shear Flow Direction

Abstract Views: 176  |  PDF Views: 0

Authors

Eugenio Fazio
Dipartimento di Scienze Geologiche, Corso Italia 57, 95129 Catania, Italy
Rosalda Punturo
Dipartimento di Scienze Geologiche, Corso Italia 57, 95129 Catania, Italy
Rosolino Cirrincione
Dipartimento di Scienze Geologiche, Corso Italia 57, 95129 Catania, Italy

Abstract


This quantitative microstructural study deals with textures of quartz domains within a mylonitized metapelite collected near a thrust surface corresponding to the tectonic contact between two metamorphic units, which crop out in the Aspromonte Massif, southern Calabria (Italy). The sample investigated lacks a mesoscopic stretching lineation. Therefore, quartz c-axis fabrics were investigated in two mutually orthogonal thin sections (a) parallel to the quartz rod lineation and perpendicular to the foliation (YZ plane) and (b) perpendicular to the quartz rods and perpendicular to the foliation (XZ plane); the data were generated using classical (manual measurements of quartz c-axis using U-stage) and modern methods (Computer Integrated Polarization microscopy). Both these sections show oblique foliations at ca. 40° from the main shear plane, implying that the actual X direction (stretching lineation that is absent on the mesoscopic scale) must lie between these two sections. Quartz c-axis data from the YZ section when rotated by 90° are similar with those from the XZ section. Hence, the data from the two sections are merged. These data when rotated by an angle of 50° from the direction of quartz rod lineation, gives an asymmetrical pattern indicating top-to-the-North sense of shear. This was confirmed by investigating quartz c-axis patterns in a section striking NS and perpendicular to the foliation. Based on the study it is thus concluded that this method can be used to do kinematic analysis in rocks that are devoid of stretching lineations. Apart from the above, the advantages and disadvantages of the classical and modern methods of quartz c-axis analysis are discussed.

Keywords


Quartz CPO, Rods, L-S Mylonite, Calabria, Grain Boundary Mapping.

References